首页> 美国卫生研究院文献>The Journal of Biological Chemistry >A kidney-specific genetic control module in mice governs endocrine regulation of the cytochrome P450 gene Cyp27b1 essential for vitamin D3 activation
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A kidney-specific genetic control module in mice governs endocrine regulation of the cytochrome P450 gene Cyp27b1 essential for vitamin D3 activation

机译:小鼠中的肾脏特异性遗传控制模块可控制维生素D3激活所必需的细胞色素P450基因Cyp27b1的内分泌调节

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摘要

The vitamin D endocrine system regulates mineral homeostasis through its activities in the intestine, kidney, and bone. Terminal activation of vitamin D3 to its hormonal form, 1α,25-dihydroxyvitamin D3 (1,25(OH)2D3), occurs in the kidney via the cytochrome P450 enzyme CYP27B1. Despite its importance in vitamin D metabolism, the molecular mechanisms underlying the regulation of the gene for this enzyme, Cyp27b1, are unknown. Here, we identified a kidney-specific control module governed by a renal cell-specific chromatin structure located distal to Cyp27b1 that mediates unique basal and parathyroid hormone (PTH)-, fibroblast growth factor 23 (FGF23)-, and 1,25(OH)2D3-mediated regulation of Cyp27b1 expression. Selective genomic deletion of key components within this module in mice resulted in loss of either PTH induction or FGF23 and 1,25(OH)2D3 suppression of Cyp27b1 gene expression; the former loss caused a debilitating skeletal phenotype, whereas the latter conferred a quasi-normal bone mineral phenotype through compensatory homeostatic mechanisms involving Cyp24a1. We found that Cyp27b1 is also expressed at low levels in non-renal cells, in which transcription was modulated exclusively by inflammatory factors via a process that was unaffected by deletion of the kidney-specific module. These results reveal that differential regulation of Cyp27b1 expression represents a mechanism whereby 1,25(OH)2D3 can fulfill separate functional roles, first in the kidney to control mineral homeostasis and second in extra-renal cells to regulate target genes linked to specific biological responses. Furthermore, we conclude that these mouse models open new avenues for the study of vitamin D metabolism and its involvement in therapeutic strategies for human health and disease.
机译:维生素D内分泌系统通过其在肠,肾和骨骼中的活动来调节矿物质的体内稳态。维生素D3最终活化为激素形式1α,25-二羟基维生素D3(1,25(OH)2D3)通过细胞色素P450酶CYP27B1在肾脏中发生。尽管它在维生素D代谢中很重要,但尚不清楚该酶Cyp27b1的基因调控的分子机制。在这里,我们确定了一个肾脏特异性控制模块,该模块受位于Cyp27b1远端的肾脏细胞特异性染色质结构控制,该结构介导独特的基础和甲状旁腺激素(PTH)-,成纤维细胞生长因子23(FGF23)-和1,25(OH) )2D3介导的Cyp27b1表达调控。小鼠中该模块内关键成分的选择性基因组缺失导致PTH诱导或FGF23丧失,以及Cyp27b1基因表达的1,25(OH)2D3抑制;前者的损失引起了衰弱的骨骼表型,而后者的损失通过涉及Cyp24a1的代偿稳态机制赋予了准正常的骨矿物质表型。我们发现Cyp27b1在非肾细胞中也以低水平表达,其中转录是通过炎症因子通过不受肾脏特异性模块缺失影响的过程专门调节的。这些结果表明,Cyp27b1表达的差异调节代表了一种机制,其中1,25(OH)2D3可以发挥单独的功能作用,首先在肾脏中控制矿物质稳态,其次在肾外细胞中调节与特定生物反应相关的靶基因。 。此外,我们得出的结论是,这些小鼠模型为维生素D代谢及其在人类健康和疾病治疗策略中的研究开辟了新途径。

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